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Lundberg, T. J.

Publications and source records attributed to Lundberg, T. J..

2 recordsLinked to original sources

A Translocation within the Ogataea Species Complex Alters Local Subtelomeric Chromatin while Maintaining Overall Genome Organization

Eukaryotic genomic DNA is packaged in the nucleus as chromatin - a DNA-protein aggregate regulating genome function, including transcription. Chromatin is classified as either active euchromatin or silent heterochromatin, with each marked by distinct histone post-translational modifications (PTMs). Chromatin composition also mediates genome organization, including how heterochromatin aggregates at the nuclear periphery while euchromatin localizes to the nucleus center. In fungi, heterochromatic loci cluster, including independent centromere and telomere clusters that form the Rabl chromosome conformation. However, it is unknown if chromatin composition and genome organization are conserved in closely related fungi, and how these features are impacted by large-scale chromosomal rearrangements. Here, we examined differences in histone PTM deposition, gene expression, and genome organization in two yeast species from the order Pichiales, which diverged from the common ancestor shared with Saccharomyces cerevisiae more than 200 million years ago. We focused on Ogataea polymorpha, which is used for industrial protein production, and Ogataea haglerorum, an isolate of which harbors a translocation between chromosomes 1 and 6. We show that the enrichment of three activating PTMs - the trimethylation of lysine 4 of histone H3 (H3K4me3) and the acetylation of lysine 9 of histone H3 (H3K9ac) or lysine 16 of histone H4 (H4K16ac) - are similar genome-wide yet gene orthologs have distinct chromatin and expression patterns. While both Ogataea genomes organize into a Rabl conformation, the O. haglerorum translocation alters subtelomeric chromatin composition and expression of genes affected by the translocation. Our work highlights the genome function differences that occur on a microevolutionary scale. Article SummaryTo assess changes in chromatin - the DNA-protein aggregate controlling genome function - between closely related species of fungi, we compared histone modifications, gene expression, and DNA folding in two yeasts in the same species complex, Ogataea polymorpha and Ogataea haglerorum. Globally, we found similar patterns of chromatin composition, transcription, and genome folding, with distinct differences in individual genes. Further, a large genome rearrangement in O. haglerorum alters histone mark deposition and gene expression at affected chromosome ends. Our results provide insights into functional genome changes that occur over short evolutionary time scales and in response to large chromosomal changes.

genomics↗

Histone deacetylation and cytosine methylation compartmentalize heterochromatic regions in the genome organization of Neurospora crassa

Chromosomes must correctly fold in eukaryotic nuclei for proper genome function. Eukaryotic organisms hierarchically organize their genomes, including in the fungus Neurospora crassa, where chromatin fiber loops compact into Topologically Associated Domain (TAD)-like structures formed by heterochromatic region aggregation. However, insufficient data exists on how histone post-translational modifications, including acetylation, affect genome organization. In Neurospora, the HCHC complex (comprised of the proteins HDA-1, CDP-2, HP1, and CHAP) deacetylates heterochromatic nucleosomes, as loss of individual HCHC members increases centromeric acetylation and alters the methylation of cytosines in DNA. Here, we assess if the HCHC complex affects genome organization by performing Hi-C in strains deleted of the cdp-2 or chap genes. CDP-2 loss increases intra- and inter-chromosomal heterochromatic region interactions, while loss of CHAP decreases heterochromatic region compaction. Individual HCHC mutants exhibit different patterns of histone post-translational modifications genome-wide: without CDP-2, heterochromatic H4K16 acetylation is increased, yet smaller heterochromatic regions lose H3K9 trimethylation and gain inter-heterochromatic region interactions; CHAP loss produces minimal acetylation changes but increases heterochromatic H3K9me3 enrichment. Loss of both CDP-2 and the DIM-2 DNA methyltransferase causes extensive genome disorder, as heterochromatic-euchromatic contacts increase despite additional H3K9me3 enrichment. Our results highlight how the increased cytosine methylation in HCHC mutants ensures genome compartmentalization when heterochromatic regions become hyperacetylated without HDAC activity. Significance StatementThe mechanisms driving chromosome organization in eukaryotic nuclei, including in the filamentous fungus Neurospora crassa, are currently unknown, but histone post-translational modifications may be involved. Histone proteins can be acetylated to form active euchromatin while histone deacetylases (HDACs) remove acetyl marks to form silent heterochromatin; these heterochromatic regions cluster, forming strong interactions, in Neurospora genome organization. Here, we show that mutants of a heterochromatin-specific HDAC, HCHC, increase heterochromatic histone acetylation genome-wide and contact probability between distant heterochromatic loci. HCHC loss also impacts cytosine methylation, and in strains lacking both the HCHC and cytosine methylation, heterochromatic regions interact more with euchromatin. Our results suggest cytosine methylation normally functions to segregate silent and active loci when heterochromatic acetylation increases.

genomics↗